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Pressure induced metallization with absence of structural transition in layered molybdenum diselenide

机译:层状二硒化钼压力诱导金属化而没有结构转变

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摘要

Layered transition-metal dichalcogenides have emerged as exciting material systems with atomically thin geometries and unique electronic properties. Pressure is a powerful tool for continuously tuning their crystal and electronic structures away from the pristine states. Here, we systematically investigated the pressurized behavior of MoSe2 up to ∼60 GPa using multiple experimental techniques and ab-initio calculations. MoSe2 evolves from an anisotropic two-dimensional layered network to a three-dimensional structure without a structural transition, which is a complete contrast to MoS2. The role of the chalcogenide anions in stabilizing different layered patterns is underscored by our layer sliding calculations. MoSe2 possesses highly tunable transport properties under pressure, determined by the gradual narrowing of its band-gap followed by metallization. The continuous tuning of its electronic structure and band-gap in the range of visible light to infrared suggest possible energy-variable optoelectronics applications in pressurized transition-metal dichalcogenides.
机译:层状过渡金属二卤化物已成为令人兴奋的材料系统,具有原子薄的几何形状和独特的电子性能。压力是使晶体和电子结构不断从原始状态连续调节的强大工具。在这里,我们使用多种实验技术和从头算的方法,系统地研究了MoSe2的加压行为,直至约60 GPa。 MoSe2从各向异性的二维分层网络演变为没有结构过渡的三维结构,这与MoS2形成了鲜明的对比。我们的层滑动计算强调了硫族化物阴离子在稳定不同分层模式中的作用。 MoSe2在压力下具有高度可调的传输特性,这取决于其带隙逐渐变窄然后进行金属化的结果。在可见光到红外范围内连续调节其电子结构和带隙,表明在加压过渡金属二卤化物中可能存在能量可变的光电应用。

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